Is Most of Our DNA Garbage?

T. Ryan Gregory’s lab at the University of Guelph in Ontario is a sort of genomic menagerie, stocked with creatures, living and dead, waiting to have their DNA laid bare. Scorpions lurk in their terrariums. Tarantulas doze under bowls. Flash-frozen spiders and crustaceans — collected by Gregory, an evolutionary biologist, and his students on expeditions to the Arctic — lie piled in beige metal tanks of liquid nitrogen. A bank of standing freezers holds samples of mollusks, moths and beetles. The cabinets are crammed with slides splashed with the fuchsia-stained genomes of fruit bats, Siamese fighting fish and ostriches.

Gregory’s investigations into all these genomes has taught him a big lesson about life: At its most fundamental level, it’s a mess. His favorite way to demonstrate this is through what he calls the “onion test,” which involves comparing the size of an onion’s genome to that of a human. To run the test, Gregory’s graduate student Nick Jeffery brought a young onion plant to the lab from the university greenhouse. He handed me a single-edged safety razor, and then the two of us chopped up onion stems in petri dishes. An emerald ooze, weirdly luminous, filled my dish. I was so distracted by the color that I slashed my ring finger with the razor blade, but that saved me the trouble of poking myself with a syringe — I was to supply the human genome. Jeffery raised a vial, and I wiped my bleeding finger across its rim. We poured the onion juice into the vial as well and watched as the green and red combined to produce a fluid with both the tint and viscosity of maple syrup.

After adding a fluorescent dye that attaches to DNA, Jeffrey loaded the vial into a boxy device called a flow cytometer, which sprayed the onion juice and blood through a laser beam. Each time a cell was hit, its DNA gave off a bluish glow; bigger genomes glowed more brightly. On a monitor, we watched the data accumulate on a graph. The cells produced two distinct glows, one dim, one bright, which registered on the graph as a pair of peaks.

One peak represented my genome, or the entirety of my DNA. Genomes are like biological books, written in genetic letters known as bases; the human genome contains about 3.2 billion bases. Print them out as letters on a page, and they would fill a book a thousand times longer than “War and Peace.” Gregory leaned toward the screen. At 39, with a chestnut-colored goatee and an intense gaze, he somewhat resembles a pre-Heisenberg Walter White. He pointed out the onion’s peak. It showed that the onion’s genome was five times bigger than mine.

“The onion wins,” Gregory said. The onion always does.

But why? Why does an onion carry around so much more genetic material than a human? Or why, for that matter, do the broad-footed salamander (65.5 billion bases), the African lungfish (132 billion) and the (149 billion)? These organisms don’t appear to be more complex than we are, so Gregory rejects the idea that they’re accomplishing more with all their extra DNA. Instead, he champions an idea first developed in the 1970s but still startling today: that the size of an animal’s or plant’s genome has essentially no relationship to its complexity, because a vast majority of its DNA is — to put it bluntly — junk.

The human genome contains around 20,000 genes, that is, the stretches of DNA that encode proteins. But these genes account for only about 1.2 percent of the total genome. The other 98.8 percent is known as noncoding DNA. Gregory believes that while some noncoding DNA is essential, most probably does nothing for us at all, and until recently, most biologists agreed with him. Surveying the genome with the best tools at their disposal, they believed that only a small portion of noncoding DNA showed any evidence of having any function.

But in the past few years, the tide has shifted within the field. Recent studies have revealed a wealth of new pieces of noncoding DNA that do seem to be as important to our survival as our more familiar genes. Many of them may encode molecules that help guide our development from a fertilized egg to a healthy adult, for example. If these pieces of noncoding DNA become damaged, we may suffer devastating consequences like brain damage or cancer, depending on what pieces are affected. Large-scale surveys of the genome have led a number of researchers to expect that the human genome will turn out to be even more full of activity than previously thought.

In January, Francis Collins, the director of the National Institutes of Health, made a comment that revealed just how far the consensus has moved. At a health care conference in San Francisco, an audience member asked him about junk DNA. “We don’t use that term anymore,” Collins replied. “It was pretty much a case of hubris to imagine that we could dispense with any part of the genome — as if we knew enough to say it wasn’t functional.” Most of the DNA that scientists once thought was just taking up space in the genome, Collins said, “turns out to be doing stuff.”

For Gregory and a group of like-minded biologists, this idea is not just preposterous but also perilous, something that could yield bad science. The turn against the notion of junk DNA, they argue, is based on overinterpretations of wispy evidence and a willful ignorance of years of solid research on the genome. They’ve challenged their opponents face to face at scientific meetings. They’ve written detailed critiques in biology journals. They’ve commented on social media. When the N.I.H.’s official Twitter account relayed Collins’s claim about not using the term “junk DNA” anymore, Michael Eisen, a professor at the University of California, Berkeley, tweeted back with a profanity.

The junk DNA wars are being waged at the frontiers of biology, but they’re really just the latest skirmish in an intellectual struggle that has played out over the past 200 years. Before Charles Darwin articulated his theory of evolution, most naturalists saw phenomena in nature, from an orchid’s petal to the hook of a vulture’s beak, as things literally designed by God. After Darwin, they began to see them as designs produced, instead, by natural selection. But some of our greatest biologists pushed back against the idea that everything we discover in an organism had to be an exquisite adaptation. To these biologists, a fully efficient genome would be inconsistent with the arbitrariness of our genesis, with the fact that every species emerged through pure happenstance, over eons of false starts. Where some look at all those billions of bases and see a finely tuned machine, others, like Gregory, see a disorganized, glorious mess.

n 1953, Francis Crick and James Watson published a short paper in the journal Nature setting out the double-helix structure of DNA. That brief note sent biologists into a frenzy of discovery, leading eventually to multiple Nobel Prizes and to an unprecedented depth of understanding about how living things grow and reproduce. To make a protein from DNA, they learned, a cell makes a single-stranded copy of the relevant gene, using a molecule called RNA. It then builds a corresponding protein using the RNA as a guide.

This research led scientists to assume that the genome was mostly made up of protein-coding DNA. But eventually scientists found this assumption hard to square with reality. In 1964, the German biologist Friedrich Vogel did a rough calculation of how many genes a typical human must carry. Scientists had already discovered how big the human genome was by staining the DNA in cells, looking at the cells through microscopes and measuring its size. If the human genome was made of nothing but genes, Vogel found, it would need to have an awful lot of them — 6.7 million genes by his estimate, a number that, when he published it in Nature, he admitted was “disturbingly high.” There was no evidence that our cells made 6.7 million proteins or anything close to that figure.

Vogel speculated that a lot of the genome was made up of essential noncoding DNA — possibly operating as something like switches, for example, to turn genes on and off. But other scientists recognized that even this idea couldn’t make sense mathematically. On average, each baby is born with roughly 100 new mutations. If every piece of the genome were essential, then many of those mutations would lead to significant birth defects, with the defects only multiplying over the course of generations; in less than a century, the species would become extinct.

Faced with this paradox, Crick and other scientists developed a new vision of the genome during the 1970s. Instead of being overwhelmingly packed with coding DNA, the genome was made up mostly of noncoding DNA. And, what’s more, most of that noncoding DNA was junk — that is, pieces of DNA that do nothing for us. These biologists argued that some pieces of junk started out as genes, but were later disabled by mutations. Other pieces, called transposable elements, were like parasites, simply making new copies of themselves that were usually inserted harmlessly back in the genome.

Junk DNA’s recognition was part of a bigger trend in biology at the time. A number of scientists were questioning the assumption that biological systems are invariably “well designed” by evolution. In a 1979 paper in The Proceedings of the Royal Society of London, Stephen Jay Gould and Richard Lewontin, both of Harvard, groused that too many scientists indulged in breezy storytelling to explain every trait, from antlers to jealousy, as an adaptation honed by natural selection for some essential function. Gould and Lewontin refer to this habit as the Panglossian paradigm, a reference to Voltaire’s “Candide,” in which the foolish Professor Pangloss keeps insisting, in the face of death and disaster, that we live in “the best of all possible worlds.” Gould and Lewontin did not deny that natural selection was a powerful force, but they stressed that it was not the only explanation for why species are the way they are. Male nipples are not adaptations, for example; they’re just along for the ride.

Gould and Lewontin called instead for a broader vision of evolution, with room for other forces, for flukes and historical contingencies, for processes unfolding at different levels of life — what Gould “pluralism.” At the time, geneticists were getting their first glimpses of the molecular secrets of the human genome, and Gould and Lewontin saw more evidence for pluralism and against the Panglosses. Any two people may have millions of differences in their genomes. Most of those differences aren’t a result of natural selection’s guiding force; they just arise through random mutations, without any effect for good or ill.

When Crick and others began to argue for junk DNA, they were guided by a similar vision of nature as slipshod. Just as male nipples are a useless vestige of evolution, so, in their theory, is a majority of our genome. Far from the height of machine-like perfection, the genome is largely a palimpsest of worthless instructions, a den of harmless parasites. Crick and his colleagues argued that transposable elements were common in our genome not because they did something essential for us, but because they could exploit us for their own replication. Gould delighted at this good intellectual company, arguing that transposable elements behaved like miniature organisms, evolving to become better at adding new copies to their host genomes. Our genomes were their ocean, their savanna. “They are merely playing Darwin’s game, but at the ‘wrong level,’ ” Gould wrote in 1981.

Soon after Gould wrote those words, scientists set out to decipher the precise sequence of the entire human genome. It wasn’t until 2001, shortly before Gould’s death, that they published their first draft. They identified thousands of segments that had the hallmarks of dead genes. They found transposable elements by the millions. The Human Genome Project team declared that our DNA consisted of isolated oases of protein-coding genes surrounded by “vast expanses of unpopulated desert where only noncoding ‘junk’ DNA can be found.” Junk DNA had started out as a theoretical argument, but now the messiness of our evolution was laid bare for all to see.

see the genome in a fundamentally different way, the best place to go is the third floor of Harvard’s Department of Stem Cell and Regenerative Biology, in a maze of cluttered benches, sequencing machines and microscopes. This is the lab of John Rinn, a 38-year-old former competitive snowboarder who likes to ponder biological questions on top of a skateboard, which he rides from one wall of his office to the other and back. Rinn is overseeing more than a dozen research projects looking for pieces of noncoding DNA that might once have been classified as junk but actually are essential for life.

Rinn studies RNA, but not the RNA that our cells use as a template for making proteins. Scientists have long known that the human genome contains some genes for other types of RNA: strands of bases that carry out other jobs in the cell, like helping to weld together the building blocks of proteins. In the early 2000s, Rinn and other scientists discovered that human cells were reading thousands of segments of their DNA, not just the coding parts, and producing RNA molecules in the process. They wondered whether these RNA molecules could be serving some vital function.

As a postdoctoral fellow at Stanford University, Rinn decided he would try to show that one of these new RNA molecules had some important role. After a couple years of searching, he and a professor there, Howard Chang, settled on an RNA molecule that, somewhat bizarrely, was produced widely by skin cells below the waist but not above. Rinn and Chang were well aware that this pattern might be meaningless, but they set out to investigate it nevertheless. They had to give their enigmatic molecule a name, so they picked one that was a joke at their own expense: hotair. (“If it ends up being hot air, at least we tried,” Rinn said.)

Rinn ran a series of experiments on skin cells to figure out what, if anything, hotair was doing. He carefully pulled hotair molecules out of the cells and examined them to see if they had attached to any other molecules. They had, in fact: they were stuck to a protein called Polycomb.

Polycomb belongs to a group of proteins that are essential to the development of animals from a fertilized egg. They turn genes on and off in different patterns, so that a uniform clump of cells can give rise to bone, muscle and brain. Polycomb latches onto a number of genes and muzzles them, preventing them from making proteins. Rinn’s research revealed that hotair acts as a kind of guide for Polycomb, attaching to it and escorting it through the jungle of the cell to the precise spots on our DNA where it needs to silence genes.

When Rinn announced this result in 2007, other geneticists were stunned. Cell, the journal that released it, , calling Rinn’s paper one of the most important they had ever published. In the years since, Chang and other researchers have continued to examine hotair, using even more sophisticated tools. They bred engineered mice that lack the hotair gene, for example, and found that the mice developed a constellation of deformities, like stunted wrists and jumbled vertebrae. It appears very likely that hotair performs important jobs throughout the body, not just in the skin but in the skeleton and in other tissues too.

In 2008, having been lured to Harvard, Rinn set up his new lab entirely in hopes of finding more hotair-like molecules. The first day I visited, a research associate named Diana Sanchez was dissecting mouse embryos the size of pinto beans. In a bowl of ice next to her were tubes for the parts she delicately removed — liver, leg, kidney, lung — that would be searched for cells making RNA molecules. After Rinn and I left Sanchez to her dissections, we ran into Martin Sauvageau, a blue-eyed Quebecer carrying a case of slides, each affixed with a slice of a mouse’s brain, with stains revealing cells making different RNA molecules. I tagged along with Sauvageau as he headed to a darkened microscope room to look at the slides with a pink-haired grad student named Abbie Groff. On one slide, a mouse’s brain looked as if it wore a cerulean mustache. To Groff, every pattern comes as a surprise. She once discovered an RNA molecule that created thousands of tiny rings on a mouse’s body, each encircling a hair follicle. “You come in in the morning, and it’s like Christmas,” she said.

In December 2013, Rinn and his colleagues published the first results of their search: three potential new genes for RNA that appear to be essential for a mouse’s survival. To investigate each potential gene, the scientists removed one of the two copies in mice. When the mice mated, some of their embryos ended up with two copies of the gene, some with one and some with none. If these mice lacked any of these three pieces of DNA, they died in utero or shortly after birth. “You take away a piece of junk DNA, and the mouse dies,” Rinn said. “If you can come up with a criticism of that, go ahead. But I’m pretty satisfied. I’ve found a new piece of the genome that’s required for life.”

As the scientists find new RNA molecules that look to be important, they are picking out a few to examine in close molecular detail. “I’m totally in love with this one,” Rinn said, standing at a whiteboard wall and drawing a looping line to illustrate yet another RNA molecule, one that he calls “firre.” The experiments that Rinn’s team has run on firre suggest that it performs a spectacular lasso act, grabbing onto three different chromosomes at once and drawing them together. Rinn suspects that there are thousands of RNA molecules encoded in our genomes that perform similar feats: bending DNA, unspooling it, bringing it in contact with certain proteins and otherwise endowing it with a versatility it would lack on its own.

“It’s genomic origami,” Rinn said about this theory. “In every cell, you have the same piece of paper. Stem cell, brain cell, liver cell, it’s all made from the same piece of paper. How you fold that paper determines if you get a paper airplane or a duck. It’s the shape that you fold it into that matters. This has to be the 3-D code of biology.”

, discoveries like Rinn’s hint at a hidden treasure house in our genome. Because a few of these RNA molecules have turned out to be so crucial, they think, the rest of the noncoding genome must be crammed with riches. But to Gregory and others, that is a blinkered optimism worthy of Dr. Pangloss. They, by contrast, are deeply pessimistic about where this research will lead. Most of the RNA molecules that our cells make will probably not turn out to perform the sort of essential functions that hotair and firre do. Instead, they are nothing more than what happens when RNA-making proteins bump into junk DNA from time to time.

“You say, ‘I found it — America!’ ” says Alex Palazzo, a biochemist at the University of Toronto who co-wrote a spirited defense of junk DNA with Gregory last year in the journal PLOS Genetics. “But probably what you found is a little bit of noise.”

Palazzo and his colleagues also roll their eyes at the triumphant declarations being made about recent large-scale surveys of the human genome. One news release from an N.I.H. project declared, “Much of what has been called ‘junk DNA’ in the human genome is actually a massive control panel with millions of switches regulating the activity of our genes.” Researchers like Gregory consider this sort of rhetoric to be leaping far beyond the actual evidence. Gregory likens the search for useful pieces of noncoding DNA to using a metal detector to find gold buried at the beach. “The idea of combing the beach is a great idea,” he says. But you have to make sure your metal detector doesn’t go off when it responds to any metal. “You’re going to find bottle caps and nails,” Gregory says.

He expects that as we examine the genome more closely, we’ll find many bottle caps and nails. It’s a prediction based, he and others argue, on the deep evolutionary history of our genome. Over millions of years, essential genes haven’t changed very much, while junk DNA has picked up many harmless mutations. Scientists at the University of Oxford have measured evolutionary change over the past 100 million years at every spot in the human genome. “I can today say, hand on my heart, that 8 percent, plus or minus 1 percent, is what I would consider functional,” Chris Ponting, an author of the study, says. And the other 92 percent? “It doesn’t seem to matter that much,” he says.

It’s no coincidence, researchers like Gregory argue, that bona fide creationists have used recent changes in the thinking about junk DNA to try to turn back the clock to the days before Darwin. (The recent studies on noncoding DNA “clearly demonstrate we are ‘fearfully and wonderfully made’ by our Creator God,” .) In a sense, this debate stretches back to Darwin himself, whose 1859 book, “On the Origin of Species,” set the course for our understanding natural selection as a natural “designer.” Later in his life, Darwin took pains to stress that there was more to evolution than natural selection. He was frustrated to see how many of his readers thought he was arguing that natural selection was the only force behind life’s diversity. “Great is the power of steady misrepresentation,” Darwin grumbled when he updated the book for its sixth edition in 1872. In fact, he wrote, he was quite open-minded about other forces that might drive evolution, like “variations that seem to us in our ignorance to arise spontaneously.”

Darwin was certainly ignorant about genomes, as scientists would continue to be for decades after his death. But Gregory argues that genomes embody the very mix of adaptation and arbitrariness that Darwin had in mind. Over millions of years, the human genome has spontaneously gotten bigger, swelling with useless copies of genes and new transposable elements. Our ancestors tolerated all that extra baggage because it wasn’t actually all that heavy. It didn’t make them inordinately sick. Copying all that extra DNA didn’t require them to draw off energy required for other tasks. They couldn’t add an infinite amount of junk to the genome, but they could accept an awful lot. To subtract junk, meanwhile, would require swarms of proteins to chop out every single dead gene or transposable element — without chopping out an essential gene. A genome evolving away its junk would lose the race to sloppier genomes, which left more resources for fighting diseases or having children.

The blood-drenched slides that pack Gregory’s lab with their giant genomes only make sense, he argues, if we give up thinking about life as always evolving to perfection. To him, junk DNA isn’t a sign of evolution’s failure. It is, instead, evidence of its slow and slovenly triumph.

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In Vietnam, Rampant Wildlife Smuggling Prompts Little Concern

U MINH, Vietnam — Luc Van Ho slips through a tangled thicket of jungle, graceful as a dancer. A blanket of dried bamboo and melaleuca leaves on the forest floor barely crackles beneath his bare feet. Only the smell of cigarette smoke betrays his presence.

A hunter, Mr. Luc, 45, set out at dawn from his family’s bamboo-thatched home in Vietnam’s U Minh forest to check a half dozen homemade traps rigged along animal trails in the underbrush and on canal banks frequented by snakes and turtles.

He stops at a snare trap made of wood and bicycle brake wire, nearly invisible beneath leaves. The trap is empty, not unusual.

“Before, this forest was very different,” Mr. Luc said. “Now, the animals are so few that most hunters are changing their jobs.”

Still, in the previous two weeks, Mr. Luc had caught nine Southeast Asian box turtles and Malayan snail-eating turtles, five elephant trunk snakes, a handful of water birds and two rare Himalayan griffon vultures. For safekeeping, Mr. Luc stashed the vultures in his brother’s house, leaving them tethered in the bedroom until he can figure out what to do with them.

In the past, Mr. Luc’s hunting trips often yielded wildlife bonanzas, including prized pangolins. Also known as scaly anteaters, they are among the most trafficked mammals in the world. .

Although he caught just two pangolins last year, that price makes it well worth the effort to keep seeking them out. He knows, however, that this lucrative resource is finite.

“Pangolins will be extinct soon,” he said. Still, he expresses no plans to retire.

Mr. Luc is one of thousands of illegal hunters draining Vietnam, one of the most biodiverse countries in the world, of its animals. Its rhinoceroses have already gone extinct, and conservationists estimate that just a couple of its tigers, if any, remain. Even lesser known species like soft-shell turtles and civets are sought out for traditional medicines, food, trophies and pets.

Illegal wildlife is one of the world’s largest contraband trades, netting an estimated $19 billion a year, not including illegal fisheries and timber. While all Southeast Asian countries and many others outside of the region are involved, Vietnam plays a paramount role. The country is a major thoroughfare for wildlife goods bound for China, which arrive overland from Cambodia, Thailand and Laos; by ship from Malaysia and Indonesia; or by air from Africa.

“After China, Vietnam is the next port of call in terms of where to look to figure out what’s going on with wildlife trade,” said Dan Challender, a co-chairman of the at the International Union for Conservation of Nature.

Vietnam is also a significant consumer of wildlife, especially those yielding the ingredients for traditional medicine, such as rhino horn, which is used to treat everything from cancer to hangovers. The exotic meats of rare animals are seen as luxuries by a rising middle class eager to advertise its prosperity.

“Pangolin is frequently the most expensive item on the menu, so ordering it is an obvious way to show off to friends and colleagues,” Dr. Challender said. “The fact that it’s illegal isn’t played down and is even attractive, because it adds this element that you live beyond the law.”

International concern about the trade has never been greater, but conferences, new enforcement strategies and ivory crushes have yet to make a dent.

In February, the Obama administration to curb illegal wildlife trade by strengthening enforcement, reducing demand and sending a handful of agents abroad. The United States is the second-largest market for illegal wildlife products, but only an estimated 10 percent of traffickers are caught because of inadequate resources supporting enforcement, as well as legal loopholes pertaining to certain products, such as ivory.

“Wildlife trade is higher profile now than it’s ever been, and that’s great,” said Chris Shepherd, regional director in Southeast Asia of , a wildlife trade monitoring network. “But all of the talk about this issue by world leaders is not trickling down to the ground yet.”

In January of this year, officials intercepted more than 7,500 protected pig-nosed turtles in Indonesia, a frozen tiger in Vietnam and 190 endangered black pond turtles in Singapore. As wildlife disappears in Southeast Asia, poachers increasingly turn to Africa.

More than 1,500 pounds of ivory and two tons of pangolin skins were intercepted in Uganda in January. Last year in South Africa alone, a record 1,215 rhinos were killed for their horns.

The illegal wildlife products that officials manage to interdict account for an estimated 10 to 20 percent of the total trafficked.

“We may be disrupting criminal networks, but we’re certainly not dismantling any of them,” said Scott Roberton, Vietnam country representative and regional coordinator for wildlife trafficking programs for the Wildlife Conservation Society. “The situation is going to get worse before it gets better.”

While China recently increased its arrests and prosecutions for wildlife crimes, those caught trafficking wildlife in Vietnam or other transit countries almost always escape punishment. Dealing in protected species is a criminal offense under Vietnamese law, as is selling wild-caught animals of any kind.

But even when trafficking kingpins are taken into custody, prosecution often depends on finding unrelated charges that are taken more seriously than wildlife crime, such as car smuggling. Poachers like Mr. Luc — who says he has never run into legal trouble — are rarely reprimanded, and punishment, if any, usually entails a small fine.

“Very few criminals caught for major violations like tiger or rhino horn possession ever do a day in prison,” said Douglas Hendrie, chief technical adviser for , a nonprofit organization based in Vietnam.

Wild-caught and protected animal products are easily procured in Vietnamese cities. “It’s not an enforcement priority yet, largely due to corruption, collusion and an absolute lack of concern,” Dr. Shepherd said. “People just do not care.”

Thien Vuong Tuu (“The Alcohol of the Gods”), a fancy restaurant in Ho Chi Minh City, advertises pangolin, bear, porcupine, bat and more on its illustrated menu. Customers interested in pangolin — sold for $150 a pound — must order it two to three hours in advance and place a deposit based on its weight.

When the customer returns for dinner, the manager presents the live pangolin to the table, then slices its throat on the spot to prove that the meat is fresh and has not been substituted.

“Pangolin is very popular with customers, because it treats a lot of sicknesses,” said Quoc Trung, the restaurant manager. His staff will also dry and package pangolin scales left over from dinner — a popular ingredient in traditional medicines that are still covered by Vietnamese health insurance.

On a Sunday night, families with young children and groups of middle-aged men fill the restaurant. At one table, two French-speaking men order a cobra to the delight of their female companions. Two young servers bring out a large, writhing snake, its mouth bound tightly shut with plastic twine.

As the customers film with their smartphones, one server holds the snake taut. The other carefully feels along the animal’s abdomen until he locates the heart, then opens it up with a pair of scissors and removes the beating organ with his bare fingers.

As the servers wring out the animal, the blood drips into a ceramic bowl to be mixed later with alcohol and drunk.

“The government doesn’t allow exotic meat, but we have our sources and good connections with the police,” Mr. Quoc said after the show concluded. “The demand is so high for these things, so we have to supply them.”

Given the widespread lack of enforcement, grass-roots conservation organizations in Vietnam increasingly find themselves on the front lines. Education for Nature-Vietnam recently conducted a survey of restaurants, hotels and shops in 12 districts in Hanoi and Ho Chi Minh City, recording each violation of wildlife laws and insisting that authorities follow up.

Several months later, the group repeated the survey and found the availability of illegal products ranging from snake “wine” to bear bile had fallen by nearly 60 percent in eight of the districts. “When authorities put us out of work by doing their job effectively and consistently, then we’ll no longer have to do this,” Mr. Hendrie said.

, a nonprofit based at Cuc Phuong National Park, organizes training sessions across the country for park rangers and the police, conducts community education programs and operates one of the country’s only rehabilitation centers for confiscated animals.

In Vietnam, much of the wildlife intercepted from illegal traders is sold by officials back into the black market. Nguyen Van Thain, Save Vietnam’s Wildlife’s founder, often must race to the sites of recent confiscations to try to recover animals before that can happen.

“Corrupt rangers still want to sell animals back to the trade,” Mr. Nguyen said. Even if the animals are not sold, very few return to the wild, because of a lack of rehabilitation facilities.

Animals not sent to a specialized rescue center often “just sit around until they die,” Dr. Shepherd said.

Over the last three months, Mr. Nguyen has helped rescue 20 pangolins, but the maximum capacity at his center — one of only two in Vietnam that can care for pangolins — is less than 50. With a budget of just $90,000 a year, he has few resources with which to expand the center and hire additional staff.

Mr. Nguyen says he is not confident that attitudes will change in time to spare his country’s wildlife.

“The problem in Vietnam is that conservation is a new way of thinking,” he said. “Vietnamese people need to learn to take seriously what we have now. We need to take care of our own environment and wildlife if we want it to be around in the future.”


A picture caption with an earlier version of this article misidentified a turtle captured by a poacher. It was a Malayan snail-eating turtle, not a Southeast Asian box turtle.

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Arizona Bill Would Ban Local Limits on Plastic Bags

PHOENIX — While other places have turned to bans and fees to discourage the use of plastic bags, Arizona is headed in a different direction.

On Thursday, the State Legislature here sent a bill to the governor that would ban the bans, with supporters seeing it as a way to protect businesses and consumers from a potential hodgepodge of regulations.

The bill would prevent cities and counties from regulating the “sale, use or disposition of auxiliary containers,” which include single-use disposable bags, boxes, cans and bottles. It would also prohibit requirements for businesses to report energy use.

State Senator Nancy Barto, the bill’s sponsor and a Republican, said that “excessive regulation on containers creates more work and cost for retailers and other businesses — and leads to higher consumer cost and a drag on economic growth.”  She added: “Municipalities acting on their own to implement these mandates run counter to the state’s goal to overcome Arizona’s sluggish job growth and economic stability.”

The only city to carry out any such rule is Bisbee, southeast of Tucson, which banned single-use plastic bags and requires a 5-cent charge per paper bag.

Lauren Kuby, a city councilwoman in Tempe, cited estimates that 50 million single-use plastic bags are used each year in the city and that less than 5 percent are recycled. She said the city faced costs from litter, as well as from the damage the plastic bags caused to machinery at recycling facilities.

In a state where leaders often rebel against federal oversight, Ms. Kuby accused legislators of taking away the decision-making authority of local officials. “It’s a very ironic thing, and it’s poor public policy,” she said.

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A Map Of Lightning Strikes Around the World

Lightning Map

Lightning Map

Lightning strikes are one of those dangerous natural occurrences that happen all over the world, spawning and adding a bit of atmospheric flair to movies and ghost stories.

But there are definitely some places where lightning strikes more often than others. The map above was created using nearly 20 years of data from two satellites, which recorded lightning flashes from 1995 to 2013. The map looks at the average number of strikes per square kilometer. Areas with low amounts of lightning are colored purple and areas with higher amounts are in pink.

The countries with the are Venezuela and the Democratic Republic of the Congo. If you want to avoid lightning, try going somewhere in the middle of an ocean towards either one of the poles. Because lightning tends to strike on land and closer to the equator, you'll have a better chance of eluding the strikes (though you might get cold ... or seasick).

Lightning tends to occur mostly on land near the equator because that's where the heat is. Lightning-generating storms in areas where there is a large difference in temperature between lower levels of the atmosphere and layers further up. Land heats up more quickly than the ocean (just think about the difference between a swimming pool and the sidewalk on a hot day) and areas near the equator get more sun than the poles.

The researchers who put together this map are part of a NASA-affiliated group called the which sounds like a rapid-response superhero group. Their next mission is to put more lightning sensors in space, on the ISS and in geostationary orbit, to monitor storms around the world.

[Via ]
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Behind Each Breath, an Underappreciated Muscle

Some muscles get all the glory. Bodybuilders show off their swollen triceps; sprinters flash their sharp-edged calves. But deep inside all of us, a sheet of muscle does heroic work in obscurity.

In order to breathe in, we must flatten the dome-shaped diaphragm; to breath out, we let it relax again. The diaphragm delivers oxygen to us a dozen times or more each minute, a half-billion times during an eighty-year life.

“We are completely dependent on the diaphragm,” said , a biologist at the University of Utah. “But we take it for granted every moment we’re breathing.”

To Dr. Kardon, the diaphragm is not just underappreciated but puzzling. All mammals, from platypuses to elephants, have a diaphragm. But no other animal has one. “We have a very different solution for breathing than reptiles and birds,” said Dr. Kardon.

Before the evolution of a diaphragm, our reptilelike ancestors probably breathed the way many reptiles do today. They used a jacket of muscles to squeeze the rib cage.

Once the diaphragm evolved, breathing changed dramatically. Mammals gained a more powerful, efficient means to draw in a steady supply of oxygen. The evolution of a diaphragm may thus have made it possible for mammals to then evolve a warm-blooded metabolism. Without a diaphragm, humans might not have been able to evolve giant — but oxygen-hungry — brains.

Scientists suspect that the diaphragm evolved through some change in the way mammal embryos develop: Mutations caused certain embryonic cells to grow into an entirely new muscle. Dr. Kardon and other researchers are trying to understand that shift and why the muscle sometimes fails to develop, with catastrophic consequences.

One in every 2,500 babies is born with a hole in its diaphragm. The baby’s liver, intestines and other abdominal organs can push up through this opening against the lungs, stunting their growth and restricting the baby’s breathing. About a third of babies born with congenital diaphragmatic hernias die, and it is likely that still more die of this defect before birth.

Scientists have found that mutations in certain genes can increase the risk of developing hernias. But they have struggled to figure out exactly how these genes build the diaphragm. Dr. Kardon and her colleagues recently developed a set of new tools get a closer look. They last week in Nature Genetics.

They engineered mice so that certain types of cells would glow inside mouse embryos. Then they tracked the cells as they multiplied and migrated.

The diaphragm begins as a pair of folds flanking the esophagus, she and her colleagues found. These folds then expand in two waves. “It’s beautiful, aesthetically,” said Dr. Kardon.

In the first wave, one set of cells in the folds multiplies outward, toward the sides of the body. Then these cells fan out toward the front and back. The cells become connective tissue, forming a thin membrane across the top of the liver.

In the second wave, muscle-generating cells emerge from the folds. They follow the trail blazed by the connective tissue, forming a second sheet sandwiched inside the membrane. “The muscle cells are kind of dumb, and they’re just following the connective tissue,” said Dr. Kardon.

As part of their experiment, Dr. Kardon and her colleagues examined GATA4, a gene linked to diaphragmatic hernias. They engineered mouse embryos in which they could shut down GATA4 only in certain types of cells, and only at certain points in development.

In one trial, the scientists turned off GATA4 in the muscle cells in the diaphragm. In these cases, the mice formed diaphragms. But when the researchers shut down GATA4 in the connective tissue, the mice developed hernias.

Connective tissue cells must be using GATA4 to lay down a chemical trail for muscle cells, Dr. Kardon concluded. They can still lay down the trail if they have one defective copy of the GATA4 gene.

Each time the connective tissue cells divide, there is a chance that a working copy of GATA4 may mutate, too. If that happens, the mutant cell and its descendants can’t lay down a trail, resulting in a gap in the sheet of muscle.

As the liver pushes against the diaphragm, the pressure creates intense stress in the gap, causing the diaphragm to rupture.

, a geneticist at Harvard Medical School, said that the new study offers a molecular explanation for how congenital diaphragmatic hernias occur. “I think it is a beautiful study and terribly important,” he said.

John J. Greer, a biologist at the University of Alberta, said he was skeptical that this scenario could account for most hernias.

He noted that most medical cases of congenital diaphragmatic hernias occur in the back left or right corners of the diaphragm. Dr. Kardon and her colleagues produced many hernias in the middle or front of the diaphragm of their mouse subjects.

Dr. Kardon countered that a lot of hernias occur in other parts of the diaphragm, but doctors fail to notice many of them. Since the lungs sit at the back of the diaphragm, hernias there can be dangerous. Hernias elsewhere can be harmless.

“Because they don’t have serious medical consequences, they go unnoticed,” she said.

It is possible that the diaphragm may have evolved in two waves, much as it develops in the embryo. Dr. Kardon suggested that the ancestors of mammals may have evolved a connective tissue sheet first, simply to separate the lungs from the abdomen.

Only later did muscles form a sandwiched layer, creating a breathing pump.

This transition may not have required a lot of mutations. Muscle cells follow chemical trails made by connective tissue in other parts of the body. Once the connective tissue cells started making a proto-diaphragm, muscle cells already had the molecular machinery required to follow them.

“The mechanism is already in place,” said Dr. Kardon. “It’s a relatively simple step, even if it sounds like an impossible chasm.”

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Cold Spring Harbor Lab, Seeking Human Subjects, Teams Up With Hospital System

COLD SPRING HARBOR, N.Y. — Some of the world’s finest scientists live in a former whaling village on the North Shore of Long Island, in a compound reminiscent of an army post.

In this pastoral setting, they have very self-consciously taken themselves out of the real world into a cerebral one, where they are searching for the genetic origins of and the drugs to cure it.

But despite the many breakthroughs that have taken place here, at Cold Spring Harbor Laboratory, there is one thing that has been lacking: human subjects.

To remedy that shortcoming, the lab is about to embark on a new collaboration between pure science and clinical science with North Shore-Long Island Jewish Health System, a nearby hospital system that can offer a wealth of patients to study.

“The hardest part of doing clinical research is enrolling patients in clinical trials,” said Dr. Kevin J. Tracey, chief executive of the Feinstein Institute for Medical Research at North Shore-L.I.J. “You have to have lots and lots of patients.”

North Shore-L.I.J., which has 19 hospitals spread through Long Island, Queens, Manhattan, Staten Island and Westchester County, offers a genetically diverse patient base in the millions with different racial and ethnic backgrounds. It diagnoses and treats in more than 16,000 new patients a year.

Dr. Bruce Stillman, chief executive of Cold Spring Harbor lab, recalled arriving there in 1979 to work as a postdoctoral fellow under James D. Watson, co-discoverer of the double-helix structure of DNA, when “we were still trying to figure out what cancer was.”

Dr. Stillman said he began seriously considering the hospital collaboration about a year ago, because he was frustrated by not being able to move quickly from preclinical studies of cancer in the lab to the next stage of trying out therapies in people.

He approached the idea with some trepidation about whether it would lead the laboratory in the wrong direction.

“I didn’t want to dilute the basic science and become applied research,” he said. “Yet the opportunities were just screaming out.”

From the hospital system’s point of view, an affiliation with an institution known for its Nobel laureates is good branding.

Much cancer research is now focused on matching treatments to the genetic makeup of a tumor or even a patient. Cold Spring Harbor Laboratory is a pioneer in using three-dimensional methods to culture tumor cells, as opposed to the conventional two-dimensional cultures many laboratories use. In these three-dimensional cultures, tumor cells form beach-ball-like structures of hundreds of cells called organoids, which better mimic the way cancer functions in real life. Its scientists also study cancer tumors in mice.

Still, there are limits even to such advanced techniques. When scientists find a genetic target in the lab, and a drug that might work on it, Dr. Stillman said, “we need to understand whether it’s really working in the patient.”

More than $120 million will be invested in the collaboration over the next 10 years. Over time, Dr. Stillman said, the lab will build up a research unit in the hospital that will parallel the one it has for animals at Cold Spring Harbor. The closest comparison, he said, would be with academic medical centers like Massachusetts General, Dana Farber, Memorial Sloan Kettering and Johns Hopkins. But, he added, “It’s very rare to have scientists working with clinicians and suggesting what the clinicians do.”

One advantage of having human subjects is that some of the most interesting advances in medicine have come through serendipity — from discovering that a drug that fails for one disease is actually effective in another.

In a cluster of relatively new buildings designed to echo the old whaling architecture, researchers are working on cures for all kinds of cancers. Lindsey Baker, 31, a postdoctoral fellow in cancer biology, said she was excited by the new collaboration because cancer drug trials were often done in elite institutions where most of the patients were white and affluent. North Shore, she said, offers the opportunity to look at other racial and economic groups.

There are also practical advantages to working with a nearby hospital, she said, since the faster a tissue sample is delivered, the healthier it is and thus the better for research.

Although researchers will not know the identities of the patients who have given tissue samples, if a breakthrough discovery were made, it would be possible to retrace the identity of the donor and perhaps apply the new knowledge to that person’s treatment.

Dr. Chris Vakoc, who is studying acute myeloid leukemia, a blood cancer, is one of the resident scientists. His house, its porch littered with children’s toys, overlooks the harbor. He said clinicians often had a more intuitive sense of what worked in their patients than pure scientists.

“We tend to always think about things in a molecular way,” Dr. Vakoc said. “It’s very different treating a patient. Sometimes it’s kind of humbling to hear them say, ‘I doubt this is going to work.’ ”

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California Drought Is Worsened by Global Warming, Scientists Say

California’s Extreme Drought, Explained

California’s Extreme Drought, Explained

California is experiencing the worst drought in its history, and the effects are being felt nationwide.

The severe California drought that has led the state to order cutbacks in water use may not have been set off by , scientists say, but global warming is making the situation worse.

“The drought is made of two components: not enough rain and too much heat,” said Michael Oppenheimer, a climate scientist at Princeton. “The rain deficit isn’t clearly connected to climate change, but the planetary warming has made it more likely that the weather would be hotter in California.”

Warmer temperatures worsen drought by causing more evaporation from reservoirs, rivers and soil. Scientists say that the warming trend makes it highly likely that California and other parts of the Western United States will have more severe droughts in the future.

“The 21st century for sure is being characterized by persistent, ubiquitous drought in the West,” said Deke Arndt, the chief of the climate monitoring branch of the National Climatic Data Center in Asheville, N.C. “The projection is for that to continue.”

The current drought, which began in 2011, is the worst in 120 years of climate record-keeping in the state, and some studies suggest it is the worst in more than a thousand years.

Recent research has blamed natural variability, rather than climate change caused by greenhouse gas emissions. Specifically, some scientists say that conditions in the Pacific Ocean have led to the formation of ridges of air off the West Coast that have kept storms from reaching the state.

While there is still debate about whether climate change has caused the lack of rain, there is less controversy about the role of warming temperatures. A recent study led by Noah Diffenbaugh, an associate professor in earth sciences at Stanford, found that in California over the past two decades, dry periods have more frequently overlapped with warm periods than in prior decades.

“It used to be that half the years were warm, and half were cool,” Dr. Diffenbaugh said. “Now we’re in a regime where most of the years are warm.”

Higher temperatures also reduce snowpack, now at record low levels. “In warmer conditions, precipitation falls as rain rather than snow,” Dr. Diffenbaugh said. “We saw that very clearly this winter.”

During major storms in December and February, warm conditions brought mostly rain and little snow to the Sierra Nevada.

Ordinarily, the snowpack naturally stores water, gradually melting into reservoirs and canals over the spring and summer. But with higher temperatures, Dr. Diffenbaugh said, what little snow there is melts sooner. “The water we have in the reservoirs now is essentially all we’re going to have until the start of the next rainy season,” he said.

Mr. Arndt said it was unlikely that there would be relief in the next six months. “It’s like a baseball lineup,” he said. “These are the wimpy hitters as far as their historical capacity to help out.” “Unless something dramatic happens very soon,” Mr. Arndt added, “we’re realistically looking to next fall as the next opportunity for putting a big dent in the drought.”

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Long-Eared Bat Gets Federal Protection

The federal government said Wednesday that it is listing the northern long-eared bat as threatened, giving new protections to a species that has been nearly wiped out in some areas by the spread of a fungal disease. was first discovered among bats in a cave near Albany, N.Y., in 2006, and has since killed millions of bats in the Northeast, South and Midwest. It spreads while they congregate on the wet walls of caves or mines, interrupting their hibernation and causing them to starve or dehydrate. Bats play a key role in insect control. Tony Sullins, Midwestern chief of the endangered species program for the United States , said protections are limited because the main threat is from a disease, rather than from human-induced changes in the environment. Protective measures improve the bats’ breeding opportunities by restricting some logging and tree removal from areas where they spend warmer months. The meausres will be in effect in June and July, when newborn bats live in nests before learning to fly. An oil drillers’ group said the decision stifles industry while providing questionable protections to the bats.

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Physicists Figure Out Why Honey Falls In Twists

A stream of honey falls onto a freshly baked buttermilk biscuit. Before you devour this breakfast treat, you might notice that the honey you poured formed a wavy pattern on the biscuit's surface, an unintentional decoration for your morning snack.

Most people might think 'huh, that's weird' and then eat the biscuit and move on with their lives. But some physicists who noticed the weird twists and turns of honey have taken it upon themselves to figure out why honey and other viscous liquids (and even rope or threads) sometimes take such a strange and winding road towards a moving surface. In this case, the moving surface is the biscuit--you didn't want your honey to be pooled in one spot, so you drizzled it across the entire thing. In a published in Physical Review Letters some scientists think they've figured out why honey behaves this way.

To get a better idea of what the physicists were looking at, check out the video below showing honey being deposited on a conveyor belt. As the conveyer belt slows down, the honey begins to waver, forming waves, and then neat coils on the conveyor belt.

If the honey was being drizzled straight down it would also form coils, kind of like a . But these scientists were particularly interested in why honey and other viscous (thick or sticky) liquids formed curly patterns on a moving surface. They found that primarily determined how the honey would fall; the point where the honey hits the moving surface and the angle between the stream of honey and the surface at that point.

It might seem like a weird thing to study, but knowing why waves and coils form could be very helpful to engineers trying to lay undersea cables (which can behave like ropes, very similar to streams of honey) or people working with 3D printers, which often use a viscous liquid to build their designs.

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ADM Announces Plan to Fight Deforestation

, one of the world’s largest commodities suppliers, has joined the growing number of major agriculture and food companies promising to take steps to conserve forests that are threatened by the global demand for commodities like palm oil and soy.

The company, known as ADM, offered a brief outline of its commitment on Tuesday, including its intention to work with third-party environmental experts to assess the impact of its supply chains on forests and other areas that have high conservation value. It will formally announce details of its policy at its annual meeting on May 7.

“We are confident that our No Deforestation policy is both strong and appropriate for our company,” Victoria A. Podesta, chief communications officer for ADM, said in a statement. “It combines a clear commitment to no deforestation with progressive action focused on our most critical supply chains.”

ADM said it would work with , a nonprofit group that helps companies reduce the impact of their supply chains on the environment. The company will begin by mapping its supply chains to help it determine where they harm fragile forest ecosystems.

In September, some of the world’s largest companies, including Cargill, Kellogg and Nestlé, that they would work to end tropical deforestation resulting from demand for commodities by 2030.

Many big companies have learned that incorporating conservation into their business plans can reduce costs — and they also are keenly aware that consumers are increasingly interested in how food ingredients are produced.

“ADM has shown that they can boost soy production by focusing expansion on degraded land and yield improvement, instead of sacrificing forests,” Glenn Hurowitz, chairman of , a program backed by a coalition of environmental advocacy groups, said in a statement.

Cargill, an ADM competitor, has with the Nature Conservancy to develop satellite technology to track clear-cutting of forests in the Amazon. And since 2004, the company and the conservancy have to increase production of soy on land cleared long ago.

ADM’s plan will focus on the Brazilian Amazon and endangered forests in other parts of South America where commodities are grown, Forest Heroes said in a statement.

“There’s still plenty of room for other big South American players like Bunge, Cargill and Louis Dreyfus to leapfrog ADM in the global race to deliver the environmentally and socially responsible products consumers want to buy,” Barbara Bramble, senior director for international wildlife conservation at the , said in a statement.

Susan Eich, a spokeswoman for Cargill, said ADM’s policy seemed similar to her company’s. “We’re pleased to see the industry moving in the right direction,” she said.

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Climate Change Threatens to Kill Off More Aspen Forests by 2050s, Scientists Say



The beloved aspen forests that shimmer across mountainsides of the American West could be doomed if emissions of greenhouse gases continue at a high level, scientists warned on Monday. That finding adds to a growing body of work suggesting forests worldwide may be imperiled by .
The analyzed the drought and heat that killed millions of aspens in Colorado and nearby states a decade ago. Such conditions could become routine across much of the West by the 2050s unless global emissions are brought under control, the study found.
“I think of aspens as a good canary-in-the-coal-mine tree,” said William R. L. Anderegg, the Princeton University researcher who led the new study, released online Monday by the journal Nature Geoscience. “They’re a wet-loving tree in a dry landscape. They may be showing us how these forests are going to change pretty massively as that landscape gets drier still.”


The study found that large aspen die-offs were a near-certainty only if greenhouse emissions were to continue at the runaway pace that has characterized the last decade. If global emissions are brought under control, the chances will improve that large stands of aspens could be preserved, the paper found.


In the fall, stands of trembling aspens are among the most breathtaking sights in the West, turning hillsides an iridescent golden hue.
Dr. Anderegg grew up camping and hiking in the aspen forests of southwestern Colorado and was dismayed when the trees started dying a decade ago. He has devoted part of his early scientific career to understanding the dieback — and the implications of it for forests elsewhere.
A central focus of the research has been to get a better handle on exactly how trees die in droughts, crucial for predicting how they will fare as proceeds. Dr. Anderegg’s research on aspens suggests that when the ground gets too dry, air bubbles appear in the tiny tubes that carry water through the tree.
“These air bubbles block the pipes and interrupt water transport, giving the tree a kind of heart attack, basically,” Dr. Anderegg said.
He and his collaborators have devised a computer model that, when programmed with climate parameters, can predict aspen mortality with about 75 percent accuracy, and they are working to improve it. Applying their model to the rainfall and temperature conditions expected in coming decades as the climate warms under business-as-usual emissions yielded the prediction of a major aspen die-off.
Depending on exactly how dry the soil gets in the hotter climate, the mortality could extend beyond the West, with aspens — and perhaps many other types of trees — dying across the country, Dr. Anderegg said.
At a global scale, forests have been responding to the rising concentration of carbon dioxide in the atmosphere with accelerated growth, allowing them to pull large amounts of the gas out of the air and thus helping to limit the effects of human emissions. How robust this forest “carbon sink” will remain through time is among the most important topics in climate science.
Dr. Anderegg’s paper fits with other recent findings suggesting that forests may not be as resilient to global warming as once hoped. For instance, a paper published two weeks ago found that the ability of the vast Amazon forest to pull carbon dioxide out of the air was through time, with trees growing faster and dying earlier.
Craig D. Allen, a forest expert with the United States Geological Survey who was not involved in the new research, said Dr. Anderegg’s work was a step toward understanding what might happen across broad landscapes.
But, he warned, a huge amount of work is still needed on other tree types, in other locales, before the picture becomes clear. “There’s just a lot of variability between species,” Dr. Allen said. He noted that aspens have relatively shallow roots, limiting their ability to tap deep water in a drought, whereas other trees could be more resilient.
Forest experts, including Dr. Allen, are particularly worried about future “hot droughts,” similar to the one that struck Colorado and nearby states in the early 2000s. Huge stands of aspens died, and heat-loving beetles millions of acres of pine trees.
These droughts are characterized not just by a lack of rainfall but by high temperatures that suck residual moisture out of the soil. They are predicted to increase in a warming climate.
In addition to killing forests, these types of droughts may make food production more difficult, as is becoming evident in California, which is suffering through the fourth year of an especially warm drought.
The frequency and intensity of such lethal droughts later this century will most likely be reduced if efforts to control carbon dioxide emissions are successful over the next few decades, scientists believe.
“The more we lower emissions, the less the risks become,” Dr. Anderegg said. “The choice is in our hands.”

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Syracuse to Drop Fossil Fuel Stocks From Endowment

is dropping all fossil fuel stocks from its endowment, the university announced on Tuesday. At $1.2 billion, Syracuse’s is the largest endowment to divest entirely of fossil fuel stocks. (Stanford University last year pledged to drop coal stocks from its $21.4 billion endowment.)

The university’s chancellor, Kent Syverud, said the move was part of Syracuse’s “long record of supporting responsible environmental stewardship and good corporate citizenship.”

Student protesters staged an 18-day sit-in in November Katie McChesney, a campus divestment campaign organizer with the climate action group , said the student action showed that “if you want results, turn up the heat.”

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Fluoridated Water Helps Older Adults Keep Teeth, Study Says

By
Fluoridation of water supplies, long ago proved to protect children from , also helps older adults keep their teeth, a has shown.
But fluoridation had no effect on overall bone density in the aged, a result that surprised the study’s authors because fluoridation had been shown to increase bone mass.
The study, part of the Irish Longitudinal Study on Aging, was done by researchers at the school of Trinity College Dublin and involved almost 5,000 adults older than 50.
Participants were asked to indicate roughly how many of their teeth they had; some had their bone density measured with .
Those who lived in areas with fluoridated water were more likely to report having all their teeth, the researchers found.
Fluoridation began in Ireland in 1964 and became universal in most urban areas by 1970. About 85 percent of the country has fluoridated water; areas with private wells often do not.
As in the United States, fluoridation was controversial, even though numerous studies found it safe


Healthy teeth have long been linked to general well-being in older adults. In recent decades, studies have linked gum and tooth disease to heart disease. The leading theory was that oral infections and inflammation reached the heart through the blood.
But concluded in 2012 that there was no proof that periodontal disease caused heart disease.

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How Idealism, Expressed in Concrete Steps, Can Fight Climate Change

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Idealism combined with an intriguing application of economic theory may accomplish what international conferences have not: solving the seemingly intractable problem of global warming.
Despite periodic flurries of optimism, diplomacy has been largely disappointing. The 1997 , for example, in which many nations agreed to impose strict taxes on carbon emissions, hasn’t accomplished much. And subsequent climate conferences haven’t come up with an effective solution. Secretary of State John Kerry summed up the diplomatic landscape in December at the United Nations climate change conference in Lima, Peru: “.”


From an economic standpoint, international efforts until now have foundered on a fundamental “free rider problem.” In a nutshell, individuals and nations that bear the immediate costs of measures to protect the atmosphere will experience only a small fraction of the benefits, which are shared by all the people and nations on the planet. Why not just take a “free ride” and let others do the hard work?


In traditional economic theory, the benefits of reducing emissions take the form of an “externality,” meaning they are external to the local environment because they are spread over the whole world. Our own contributions are often too small to see or feel.
When the problem is an externality, it is, for the most part, futile to ask people to volunteer to fix it — by taking actions like car-pooling or riding a bike to work to cut back on emissions or, in the case of governments, by enacting laws and regulations.
Yes, some individuals with a strong moral compass will take action, and some nations will do so occasionally, but most people and countries will not do so consistently. That’s what the theory says, anyway.
But in a new book, “” (Princeton 2015), Gernot Wagner of the Environmental Defense Fund and Martin L. Weitzman, a Harvard economist, question that assumption. In a proposal that they call the Copenhagen Theory of Change, they say that we should be asking people to volunteer to save our climate by taking many small, individual actions.
Copenhagen has motivated every day, the Danish government says. How did that come about? A half-century ago, the city’s inhabitants were becoming almost as reliant on cars as people anywhere else. But after the oil crisis of the 1970s, the authors point out, many Copenhagen residents made a personal commitment to ride bicycles rather than drive, out of moral principle, even if that was inconvenient for them.
That happened in American cities, too, but in Copenhagen there was more social support and, perhaps, social pressure to join in the movement. The sight of so many others riding bikes motivated the city’s inhabitants and appears to have improved the moral atmosphere enough to surmount the free-rider problem.
Elinor Ostrom won her Nobel in economics partly for observing that communities often solve free-rider problems. She was talking generally about contained communities like Copenhagen, not global ones. Its idealism about global warming has not spread worldwide. But she argued for a , with actions against global warming taken not just on a global scale but on a whole array of scales, involving smaller communities as well as the entire planet.
There are communities based on shared interests, not on geography, and people who believe in socially responsible investing may be considered one such community. If ethical investing takes the form of investing only in “green” companies, for example, excluding companies that pollute the atmosphere, such measures may have a similar positive impact.
Of course, one might dismiss ethical investing as achieving nothing more than creating opportunities for unethical investors, who will be more than happy to step in if there is money to be made. But placing a deviant enterprise on a list of companies to be avoided by ethical investors could change the moral atmosphere, much as bicycling has in Copenhagen — increasing the likelihood of a broader, successful social movement against pollution of the world’s atmosphere.
The world is a diverse and complicated place, however. To combat global warming, social movements aren’t enough. We also need a concrete framework on a global scale.
In his before the American Economic Association in Boston in January, William D. Nordhaus of Yale proposed what he calls “climate clubs.” Here is a genuinely concrete idea that might work to stop global warming. As he defines it, a climate club is a group of countries that agree to create incentives for people to reduce carbon emissions, while also erecting tariff barriers on imports from countries that are not members of the club.
The tariff barriers contribute to a virtuous cycle: They provide an incentive for countries in the club to create incentives for individuals to reduce emissions. Professor Nordhaus’s analysis relies on the and on his own , which shows costs and benefits from reducing emissions for each country or region in the world today.
A climate club may start with only a few countries and then grow as others join. The club may grow through time rather than collapse as we saw with the Kyoto Protocol. Now they will be coming into the club as they see, over the years, the advantages of membership.

In its pure form, the economic theory of clubs assumes that each country and individual is completely self-interested and has no interest in helping any others. But, in reality, people are not quite like that. There is some community feeling — including a sense of responsibility for the world community. Clubs might ultimately rely on such feelings to be successful.
Club founders must overcome real-world obstacles, objections from climate change deniers and those who simply don’t understand the issues or the stakes we are facing. Who is going to undertake such difficult and expensive actions without some sense of moral principle?
To solve the extremely challenging problem of climate change, we may want to rely on both theories: the Copenhagen theory and the climate club theory. As with other things in life, good things can happen when there is a sense of idealism that creates an atmosphere for change. But it will also help to have a realistic structure that puts clear penalties on bad behavior by individuals and by entire countries.

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